Joining of $\textrm{ZrO}_2$/Na $\beta$"-Alumina to $\alpha$-Alumina using Aluminoborate Glass Sealant

Aluminoborate계 유리질을 사용한 $\textrm{ZrO}_2$/Na $\beta$"-알루미나 복합재와 $\alpha$-알루미나간의 접합

  • Park, Sang-Myeon (Dept. of Aviation Materials Engineering, Hankuk Aviation University) ;
  • Choe, Gi-Yong (Dept. of Aviation Materials Engineering, Hankuk Aviation University) ;
  • Park, Jeong-Yong (Dept. of Aviation Materials Engineering, Hankuk Aviation University) ;
  • Kim, Gyeong-Heum (Dept. of Aviation Materials Engineering, Hankuk Aviation University)
  • 박상면 (한국항공대학교 항공재료공학과) ;
  • 최기용 (한국항공대학교 항공재료공학과) ;
  • 박정용 (한국항공대학교 항공재료공학과) ;
  • 김경흠 (한국항공대학교 항공재료공학과)
  • Published : 1999.01.01

Abstract

In this study we investigated the effects of process variables on the bond strength, and its dependency upon the interfacial chemistry when the joined $ZrO_2$ toughened $Na\beta$"-alumina to $\alpha$-alumina using B$_2$$O_3$-$SiO_2$-Al$_2$$O_3$-CaO glass sealant. We observed that bond strength is mainly determined by the strength of the glass, which, in turn, depends on the glass composition established after joining reaction. Joining at $950^{\circ}C$ for 15min yielded the highest average bond strength of 66MPa. Different types of interfacial reaction seem to occur at each interface. After joining at $950^{\circ}C$ for 15min we found that Ca and Si diffuse much deeper(~15$\mu\textrm{m}$) into the $\beta$"-alumina composite than into the $\alpha$-alumina(<1$\mu\textrm{m}$) as a result of ion exchange reaction and more effective grain boundary diffusion. Thermal expansion coefficient of the glass was found to have changed more closely to those of the $\beta$"-alumina composite and $\alpha$-alumina, which put the glass under a slight compressive stress.ressive stress.

Keywords

References

  1. Industrial Research & Development K.W.Browall
  2. Advances in Glass Tech C.A.Elyard;H.Rawson
  3. Deutscher Verlag fuer Schweisstechnik Conference T.I.Barry;G.S.Schajer;F.M.Stackpool
  4. EPRI Report EM-683, Project 128-4 S.P.Mitoff
  5. Korean J. Mater. Res. v.6 no.3 S.M.Park;K.J.Kim;S.M.Heo
  6. Solid State Ionics v.7 G.C.Farrington;B.Dunn
  7. Solid State Ionics v.5 B.Dunn;R.M.Ostrom
  8. Solid State Ionics v.18;19 J.B.Barrie;B.Dunn;O.M.Stafsudd
  9. EPRI Report EM-266, Project 128-3 D.Chatterji
  10. Naturwissenschafter v.66 J.O.Bovin;M.O'Keeffe
  11. J. Mater. Sci. Lett. v.10 D.L.Yang;B.Dunn;P.E.D.Morgan
  12. S.M.Park;K.J.Kim